BZT52-B13_R1_00001 >
BZT52-B13_R1_00001
Panjit International Inc.
SOD-123, ZENER
6150 Pcs New Original In Stock
Zener Diode 13 V 410 mW ±2% Surface Mount SOD-123
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BZT52-B13_R1_00001 Panjit International Inc.
5.0 / 5.0 - (353 Ratings)

BZT52-B13_R1_00001

Product Overview

12965492

DiGi Electronics Part Number

BZT52-B13_R1_00001-DG
BZT52-B13_R1_00001

Description

SOD-123, ZENER

Inventory

6150 Pcs New Original In Stock
Zener Diode 13 V 410 mW ±2% Surface Mount SOD-123
Quantity
Minimum 1

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In Stock (All prices are in USD)
  • QTY Target Price Total Price
  • 20 0.0216 0.4320
  • 200 0.0172 3.4400
  • 600 0.0147 8.8200
  • 3000 0.0122 36.6000
  • 9000 0.0108 97.2000
  • 21000 0.0102 214.2000
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BZT52-B13_R1_00001 Technical Specifications

Category Diodes, Zener, Single Zener Diodes

Manufacturer PANJIT

Packaging Tape & Reel (TR)

Series -

Product Status Active

Voltage - Zener (Nom) (Vz) 13 V

Tolerance ±2%

Power - Max 410 mW

Impedance (Max) (Zzt) 25 Ohms

Current - Reverse Leakage @ Vr 100 nA @ 10 V

Voltage - Forward (Vf) (Max) @ If 900 mV @ 10 mA

Operating Temperature -55°C ~ 150°C (TJ)

Mounting Type Surface Mount

Package / Case SOD-123

Supplier Device Package SOD-123

Base Product Number BZT52

Datasheet & Documents

Environmental & Export Classification

RoHS Status ROHS3 Compliant
Moisture Sensitivity Level (MSL) 1 (Unlimited)
REACH Status REACH Unaffected
ECCN EAR99
HTSUS 8541.10.0050

Additional Information

Other Names
3757-BZT52-B13_R1_00001DKR
3757-BZT52-B13_R1_00001TR
Standard Package
3,000

Alternative Parts

PART NUMBER
MANUFACTURER
QUANTITY AVAILABLE
DiGi PART NUMBER
UNIT PRICE
SUBSTITUTE TYPE
BZT52-B13-AU_R1_000A1
Panjit International Inc.
2990
BZT52-B13-AU_R1_000A1-DG
0.0102
Parametric Equivalent
BZT52-C13_R1_00001
Panjit International Inc.
3876
BZT52-C13_R1_00001-DG
0.0102
Parametric Equivalent

Reviews

5.0/5.0-(Show up to 5 Ratings)
Cie***ndre
грудня 02, 2025
5.0
Leur personnel est toujours sympa et leurs prix sont très compétitifs.
Zeit***chen
грудня 02, 2025
5.0
Ich schätze die Zuverlässigkeit der Produkte und den supportorientierten Kundenservice.
Kreativi***Entfalten
грудня 02, 2025
5.0
Ich schätze die schnelle Lieferung und den effizienten Nachverkauf-Service bei DiGi Electronics sehr.
ちょう***羽ばたき
грудня 02, 2025
5.0
安心して何度も利用しています。スタッフの対応が最高です。
Sun***ibes
грудня 02, 2025
5.0
DiGi Electronics provides a seamless shopping experience thanks to their large inventory and dedicated customer service team.
Vel***Glow
грудня 02, 2025
5.0
Their customer service was outstanding—responsive, knowledgeable, and patient in resolving my post-purchase questions.
Quie***rmony
грудня 02, 2025
5.0
The packaging used was eco-friendly, and the delivery was faster than expected.
Ocea***eeze
грудня 02, 2025
5.0
Delivers on time reliably, and the post-sale support is superb.
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Frequently Asked Questions (FAQ)

What are the key design-in considerations for the BZT52-B13_R1_00001 when used in a high-temperature environment near its maximum operating junction temperature of 150°C?

When integrating the BZT52-B13_R1_00001 in environments approaching 150°C, ensure adequate PCB thermal management to avoid exceeding the TJ limit under sustained load. Since the zener impedance is 25Ω max and tolerance is ±2%, temperature drift could affect voltage regulation accuracy. Use wide copper traces or thermal vias to dissipate heat, especially if the diode operates near its 410 mW power limit. Also verify that surrounding components won't degrade performance due to thermal coupling. The MSL 1 rating means moisture isn’t a reflow concern, but avoid prolonged exposure to thermal cycling above 100°C without stress testing.

How does the BZT52-B13_R1_00001 compare to the Nexperia BZX84-C13 in terms of zener impedance and stability for precision voltage reference designs?

The BZT52-B13_R1_00001 offers a competitive advantage over the BZX84-C13 with a maximum zener impedance of 25Ω, compared to ~35Ω for the BZX84-C13, resulting in better regulation under variable load conditions. Additionally, the BZT52-B13_R1_00001’s ±2% tolerance and tighter dynamic resistance improve voltage accuracy in sensitive analog circuits. However, while both are SOD-123 devices, ensure your PCB footprint supports thermal performance equivalently—consider derating current if heat buildup is a concern. The BZT52-B13_R1_00001 is a safer choice when regulation stability in compact designs is critical.

Can the BZT52-B13_R1_00001 be used as a direct replacement for the ON Semiconductor MMBZ5239B in a 13V protection circuit, and what risks should be evaluated?

The BZT52-B13_R1_00001 can serve as a functional replacement for the MMBZ5239B given the identical 13V nominal zener voltage, ±2% tolerance, and SOD-123 package compatibility. However, verify the application’s dynamic load profile—while both parts have similar Zzt, the BZT52-B13_R1_00001 has a slightly higher forward voltage (900 mV max @ 10 mA), which could affect performance in bidirectional transient suppression. Also confirm that the 410 mW power rating suffices for surge events; the MMBZ5239B may have different thermal decay curves. Always revalidate PCB layout and derating in existing designs to avoid overheating.

What are the risks of exceeding 10 mA forward current in BZT52-B13_R1_00001 during reverse recovery in switching applications?

While the BZT52-B13_R1_00001 is a zener diode not intended for continuous forward conduction, temporarily exceeding 10 mA forward current (e.g., during transient events) risks localized heating and long-term reliability degradation due to exceeding the specified 900 mV forward drop condition. In switching or AC-clamping circuits, ensure current-limiting resistors are sized to keep forward current ≤10 mA. Additionally, avoid repetitive forward surges, as they may accelerate wear-out mechanisms—even within power averages, peak thermal stress can compromise junction integrity over time.

How should the BZT52-B13_R1_00001 be derated in a sealed industrial control module where ambient temperatures can reach 85°C with no airflow?

In sealed, non-ventilated environments at 85°C ambient, derate the BZT52-B13_R1_00001 by at least 50% from its 410 mW maximum power to prevent thermal runaway. At elevated ambient temperatures, junction temperature rises rapidly due to limited convection. For example, with 13V zener voltage, limit average zener current to ≤15 mA instead of the theoretical 31.5 mA. Use thick copper pours for heatsinking and keep trace lengths short to reduce thermal impedance. Monitor temperature during burn-in to validate long-term reliability—especially critical given the extended operating temperature range up to 150°C.

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